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Published on: February 12, 2020
Clostridium perfringens α-toxin inhibits myogenic differentiation of C2C12 myoblasts
Masaya Takehara1, Keiko Kobayashi1, Masahiro Nagahama1
1Department of Microbiology, Faculty of Pharmaceutical Sciences, Tokushima Bunri University, Yamashiro-cho, Tokushima, 770-8514, Japan.
Abstract:
Clostridium perfringens type A is the causative agent of clostridial myonecrosis, and α-toxin has been reported to be responsible for the pathogenesis. Recently, it was reported that regeneration of skeletal muscle after C. perfringens-induced muscle disorders is delayed, but the detailed mechanisms have not been elucidated. Here, we tested whether α-toxin impairs the differentiation of C2C12 myoblasts, a useful cell line to study muscle growth, maturation, and regeneration in vitro. α-Toxin dose-dependently inhibited myotube formation in C2C12 cultures after induction of their differentiation by horse serum. Also, immunoblot analysis revealed that α-toxin dose-dependently decreases the expressions of two skeletal muscle differentiation markers, myogenic differentiation 1 (MyoD) and myogenin. These results demonstrate that α-toxin impairs the myogenic differentiation of C2C12 myoblasts. To reveal the mechanism behind α-toxin-mediated impairment of myogenic differentiation, we focused on ceramide production since α-toxin is known to promote the formation of ceramide by its sphingomyelinase activity. Immunofluorescent analysis revealed that ceramide production is accelerated by treatment with α-toxin. Furthermore, a synthetic cell-permeable ceramide analog, C2-ceramide, inhibited myotube formation in C2C12 cells and decreased the expressions of MyoD and myogenin, suggesting that accelerated ceramide production is involved in the α-toxin-mediated blockage of myogenic differentiation. Together, our results illustrate that the impairment of myogenic differentiation by α-toxin might be crucial for the pathogenesis of C. perfringens to delay regeneration of severely damaged skeletal muscles.
Insights
Clostridium perfringens alpha-toxin hinders skeletal muscle regeneration by blocking C2C12 myoblast differentiation. This impairment is linked to increased ceramide production, impacting myogenic factors MyoD and myogenin.
Area of Science:
- Muscle biology
- Microbial pathogenesis
- Cellular signaling
Background:
- Clostridium perfringens type A causes myonecrosis, with alpha-toxin implicated in disease pathogenesis.
- Delayed skeletal muscle regeneration in C. perfringens infections suggests underlying molecular mechanisms require elucidation.
Purpose of the Study:
- To investigate the effect of alpha-toxin on C2C12 myoblast differentiation in vitro.
- To elucidate the role of ceramide production in alpha-toxin-induced impairment of myogenic differentiation.
Main Methods:
- Dose-dependent inhibition of C2C12 myotube formation by alpha-toxin.
- Immunoblot analysis to assess MyoD and myogenin expression.
- Immunofluorescence to detect ceramide production.
- Treatment with C2-ceramide to mimic alpha-toxin effects.
Main Results:
- Alpha-toxin dose-dependently inhibited myotube formation and decreased MyoD and myogenin expression in C2C12 cells.
- Alpha-toxin treatment accelerated ceramide production.
- Exogenous C2-ceramide mimicked alpha-toxin's inhibitory effects on myogenesis.
Conclusions:
- Alpha-toxin directly impairs myogenic differentiation of C2C12 myoblasts.
- Accelerated ceramide production is a key mechanism underlying alpha-toxin's detrimental effects on muscle regeneration.
- Alpha-toxin-induced inhibition of myogenic differentiation contributes to the delayed skeletal muscle repair observed in C. perfringens infections.
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